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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >High {001} facets dominated BiOBr lamellas: facile hydrolysis preparation and selective visible-light photocatalytic activity
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High {001} facets dominated BiOBr lamellas: facile hydrolysis preparation and selective visible-light photocatalytic activity

机译:高{001}面为主的BiOBr薄片:简便的水解制备和选择性的可见光光催化活性

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摘要

Efficient photocatalytic nanocrystals with high-ratio exposure of active facets have aroused a great number of research interests in recent years. However, most preparations of such materials need the addition of special capping agents (like surfactants) or harsh reaction conditions (such as hydrothermal reactions). In this work, a controllable synthesis of BiOBr nanosheets with a thickness from 9 nm to 32 nm was easily achieved in a hydrolysis system through adjusting temperature and solvent, without adding any surfactant or capping agents. As the thickness of the nanosheets decreases from 32 nm to 9 nm, the ratio of exposed {001} facets, the active photocatalysis facets in BiOBr crystals, increases from 83% to 94%, along with an increased photocatalytic efficiency over rhodamine B (RhB) under visible-light. Various methods such as SEM, TEM, AFM, DRS and Raman spectroscopy were used to fully characterize the as-obtained BiOBr nanosheets. More importantly, the obtained BiOBr nanosheets exhibit a selective visible-light photocatalytic behavior as the activity over RhB is much higher than that over Methyl Orange (MO) or Methylene Blue (MB). This phenomenon was studied with in situ electron paramagnetic resonance (EPR) measurements and the potential mechanism was explored.
机译:近年来,具有高活性面暴露率的高效光催化纳米晶体引起了许多研究兴趣。但是,此类材料的大多数制剂都需要添加特殊的封端剂(如表面活性剂)或苛刻的反应条件(如水热反应)。在这项工作中,通过调节温度和溶剂,无需添加任何表面活性剂或封端剂,即可轻松地在水解系统中实现厚度为9 nm至32 nm的BiOBr纳米片的可控合成。随着纳米片的厚度从32 nm减小到9 nm,BiOBr晶体中暴露的{001}小平面(活性光催化小平面)的比例从83%增加到94%,并且比罗丹明B(RhB)的光催化效率提高)在可见光下。使用各种方法(如SEM,TEM,AFM,DRS和拉曼光谱法)全面表征了所获得的BiOBr纳米片。更重要的是,由于对RhB的活性远高于对甲基橙(MO)或亚甲基蓝(MB)的活性,因此获得的BiOBr纳米片表现出选择性的可见光光催化行为。通过原位电子顺磁共振(EPR)测量研究了该现象,并探讨了其潜在机理。

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